Claims
- 1. A metal material as laser marked by a thermally activated, chemically based marking method comprising the steps of:
applying a layer of mixed metal oxide material containing an energy absorbing enhancer to a metal substrate; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 2. A substrate material as laser marked by a thermally activated chemically based marking method comprising the steps of:
applying a layer of mixed metal oxide material containing an energy absorbing enhancer to a substrate selected from the group consisting of aluminum, brass, chrome, copper, nickel, steel, stainless steel, tin, glass, ceramic, porcelain, and plastic; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 3. A substrate material as laser marked by a thermally activated chemically based marking method comprising the steps of:
applying a layer of mixed metal oxide material containing an energy absorbing enhancer to a substrate to be marked in the form of a marking to be applied; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer, thereby forming a marking layer atop the substrate.
- 4. A thermally activated, chemically based marking method comprising the steps of:
applying a layer of mixed organic pigment material containing an energy absorbing enhancer to a plastic substrate; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 5. The method of claim 4 further comprising the step of providing a laminar air flow across the substrate during the irradiating step.
- 6. The method of claim 4, wherein the energy absorbing enhancer further comprises carbon black.
- 7. The method of claim 4, wherein the radiant energy beam further comprises a laser beam having an energy level ranging between 1 and 30 watts, a spot size ranging between 5 and 200 microns, and a marking speed along the substrate ranging between 25 and 100 mm/sec.
- 8. The method of claim 4, wherein the layer of mixed organic pigment material further comprises a thickness ranging between 5 and 500 microns.
- 9. The method of claim 4 further comprising the step of starting at a room temperature of about 70° F.
- 10. A plastic material as laser marked by the process according to claim 4.
- 11. A thermally activated chemically based marking method comprising the steps of:
applying a mixed organic pigment material containing an energy absorbing enhancer to a carrier; placing the carrier in contact with the substrate to be marked; and irradiating the carrier with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 12. A thermally activated chemically based marking method comprising the steps of:
applying a layer of mixed organic pigment material containing an energy absorbing enhancer to a substrate to be marked in the form of a marking to be applied; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancer, thereby forming a marking layer atop the substrate.
- 13. The method of claim 12 further comprising the step of providing a laminar air flow across the substrate during the irradiating step.
- 14. The method of claim 12, wherein the energy absorbing enhancer further comprises carbon black.
- 15. The method of claim 12, wherein the radiant energy beam further comprises a laser beam having an energy level ranging between 1 and 30 watts and a marking speed along the substrate ranging between 25 and 1000 mm/sec.
- 16. The method of claim 12, wherein the layer of mixed organic pigment material further comprises a thickness ranging between 5 and 500 microns.
- 17. The method of claim 12 further comprising the step of starting at a room temperature of about 70° F.
- 18. A glass material as laser marked by the process according to claim 12.
- 19. A thermally activated, chemically based marking method comprising steps of:
applying a layer having an organic pigment component and comprising an energy absorbing enhancing component to a plastic substrate; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancing component, thereby forming an adhered layer atop the substrate.
- 20. A thermally activated chemically based marking method comprising steps of:
applying a material comprising an energy absorbing organic pigment to a carrier; placing the carrier in contact with the substrate to be marked; and irradiating the carrier with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancing component in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 21. A thermally activated chemically-based marking method comprising steps of:
applying a material comprising an organic pigment and an energy absorbing enhancing component to a carrier; placing the carrier in contact with the substrate to be marked; and irradiating the carrier with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancing component in accordance with the form of a marking to be applied, thereby forming a marking layer atop the substrate.
- 22. A thermally activated chemically based marking method comprising steps of:
applying a material including an organic pigment which comprises an energy absorbing enhancing component to a substrate to be marked in the form of a marking to be applied; and irradiating said layer with a radiant energy beam having a wavelength selected to excite the energy absorbing enhancing component, thereby forming a marking layer atop the substrate.
- 23. A thermally activated, chemically based marking method comprising steps of:
applying a layer of a marking material comprising at least one organic pigment to a markable substrate comprising at least one plastic; and irradiating said layer with a radiant energy beam having a wavelength selected to be absorbed by said marking material, thereby forming a bonded layer atop said substrate.
- 24. The method of claim 23, wherein said organic pigment absorbs radiant energy.
- 25. The method of claim 23, wherein said marking material further comprises an energy absorbing enhancing component.
CROSS RELATED PATENTS
[0001] This application is a divisional application from U.S. application Ser. No. 09/477,921 filed Jan. 5, 2000, issued as U.S. Pat. No. 6,313,921 on Nov. 6, 2001, which was a divisional of the parent U.S. application Ser. No. 08/925,031 filed Sep. 8, 1997 and issued as U.S. Pat. No. 6,075,223 on Jun. 13, 2000.
Divisions (2)
|
Number |
Date |
Country |
| Parent |
09477921 |
Jan 2000 |
US |
| Child |
09993099 |
Nov 2001 |
US |
| Parent |
08925031 |
Sep 1997 |
US |
| Child |
09477921 |
Jan 2000 |
US |